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A Method to Study the C924T Polymorphism of the Thromboxane A2 Receptor Gene
Published on: April 1, 2019
Mutagenic analysis of platelet thromboxane receptor cysteines. Roles in ligand binding and receptor-effector coupling
D D D'Angelo1, J J Eubank, M G Davis
1University of Cincinnati, Ohio 45267-0542, USA.
Abstract:
The human platelet thromboxane A2 receptor is a member of the G-protein-coupled superfamily of receptors. Previous pharmacologic studies examining the effects of biochemical reduction, oxidation, or sulfhydryl alkylation on thromboxane receptors have suggested a role for cysteines in determining receptor binding characteristics. To characterize the roles of individual cysteines, we employed site-directed mutagenesis to substitute serines for cysteines at seven positions throughout the human K562 thromboxane receptor and analyzed mutant receptor radioligand ([1S-(1alpha,2beta(5Z),3alpha- (1E,3S),4alpha]-7-[3-(3-hydroxy-4-(p-iodophenoxy)-l-butenyl)-7-oxabicyclo-[2. 2.1]heptane-2-yl]-5-heptenoic acid) binding and calcium signaling. Replacing cysteines in the amino terminus (amino acid position 11), and transmembrane domains two and six (positions 68 and 257) had little effect on thromboxane receptor binding or signaling. Introduction of serines for cysteines in the first (position 105) or the second (position 183) extracellular loop eliminated thromboxane receptor binding, consistent with the existence of a critical disulfide bond between these positions. Mutation of a second cysteine in extracellular loop one (position 102) resulted in a receptor with decreased binding affinity and low binding capacity that transduced only a low amplitude calcium signal, suggesting the involvement of a free sulfhydryl group at this location in receptor-ligand interactions. Finally, mutation of the cysteine at position 223, located in intracellular loop three, resulted in a receptor with normal ligand binding characteristics, but which did not transduce a calcium signal. Some additional amino acid substitutions in this region of the receptor (Cys-223 --> Ala, Thr-221 --> Met) resulted in receptors that had normal binding but transduced low amplitude calcium signals, while other mutations in the same region (His-224 --> Arg and His-227 --> Arg) exhibited normal binding and calcium signaling characteristics. These findings demonstrate that cysteines in extracellular loops one and two contribute to proper ligand binding to thromboxane receptors and show the importance of discrete amino acid sequences in the third intracellular loop, especially cysteine 223, in thromboxane receptor-effector coupling.
Insights
This study reveals critical cysteine roles in thromboxane A2 receptor function. Key cysteines in extracellular loops are essential for ligand binding, while others in intracellular loops mediate signal transduction.
Area of Science:
- Molecular Biology
- Biochemistry
- Pharmacology
Background:
- The human platelet thromboxane A2 receptor (TP) is a G-protein-coupled receptor involved in platelet aggregation.
- Previous studies suggested cysteines influence TP binding characteristics, but individual roles were unclear.
Purpose of the Study:
- To elucidate the specific roles of individual cysteine residues in human TP binding and signaling.
- To investigate the contribution of cysteines to receptor-ligand interactions and downstream calcium mobilization.
Main Methods:
- Site-directed mutagenesis was used to replace seven cysteine residues with serines in the human K562 TP.
- Mutant receptors were analyzed for radioligand binding and calcium signaling responses.
- Specific mutations included substitutions in extracellular loops, transmembrane domains, and intracellular loops.
Main Results:
- Cysteines in extracellular loops 1 and 2 (positions 105 and 183) are critical for ligand binding, suggesting a disulfide bond.
- A cysteine in extracellular loop 1 (position 102) is important for binding affinity and capacity, indicating a role for a free sulfhydryl group.
- Cysteine 223 in intracellular loop 3 is essential for calcium signaling, while other mutations in this loop affect signal transduction differently.
Conclusions:
- Cysteines within extracellular loops 1 and 2 are crucial for maintaining the proper structure for thromboxane A2 receptor ligand binding.
- Cysteine 223 and surrounding amino acids in intracellular loop 3 play a vital role in thromboxane A2 receptor-effector coupling and signal transduction.
- These findings highlight the distinct functional importance of specific cysteine residues in different domains of the thromboxane A2 receptor.
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